cssftw
Member
- Joined
- Jun 19, 2009
- Messages
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- HSC
- 2011
Hi guys need a bit of help on this question:
Q. Water is poured into an inverted cone at a rate of 10cm^3 /second. The radius of the cone is 5cm and its height is 10cm.
(i) At what rate is the level rising after 2 seconds?
(ii) At what rate is the level rising when the level is 8cm?
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My solution (please someone figure out what is wrong with it):
dV/dt = 10 cm^3 / second
We are trying to find dx/dt (where x is the length from the tip of cone to the level of water --> remember the cone is INVERTED
dx/dt = dV/dt * dx/dV
V=(1/3)(pi)(r^2)(h)
x=h, r=r, therefore:
V=(1/3)(pi)(r^2)x
By using similar triangles:
x/10 = r/5 (sorry I don't have a diagram)
Therefore r = x/2, subbing back into V:
V = (1/3)(pi)((x^2)/4)(x)
V = ((pi)(x^3))/12
Therefore:
dV/dx = 3(x^2)(pi)/12
dV/dx = (x^2)(pi)/4
THEREFORE: dx/dV = 4/(x^2)(pi)
Substituting this back into the chain rule expression:
dx/dt = dx/dV * dV/dt
dx/dt = 40/((x^2)(pi)) m/s
So that's what I got for my expression of the rate of change of water level -- however it doesn't look very right, does it? I mean how do I find the rate of change at t=2 seconds?
If anyone could find the proper expression for dx/dt, and how to find the answer to the questions it would be immensely appreciated!
Q. Water is poured into an inverted cone at a rate of 10cm^3 /second. The radius of the cone is 5cm and its height is 10cm.
(i) At what rate is the level rising after 2 seconds?
(ii) At what rate is the level rising when the level is 8cm?
----------
My solution (please someone figure out what is wrong with it):
dV/dt = 10 cm^3 / second
We are trying to find dx/dt (where x is the length from the tip of cone to the level of water --> remember the cone is INVERTED
dx/dt = dV/dt * dx/dV
V=(1/3)(pi)(r^2)(h)
x=h, r=r, therefore:
V=(1/3)(pi)(r^2)x
By using similar triangles:
x/10 = r/5 (sorry I don't have a diagram)
Therefore r = x/2, subbing back into V:
V = (1/3)(pi)((x^2)/4)(x)
V = ((pi)(x^3))/12
Therefore:
dV/dx = 3(x^2)(pi)/12
dV/dx = (x^2)(pi)/4
THEREFORE: dx/dV = 4/(x^2)(pi)
Substituting this back into the chain rule expression:
dx/dt = dx/dV * dV/dt
dx/dt = 40/((x^2)(pi)) m/s
So that's what I got for my expression of the rate of change of water level -- however it doesn't look very right, does it? I mean how do I find the rate of change at t=2 seconds?
If anyone could find the proper expression for dx/dt, and how to find the answer to the questions it would be immensely appreciated!
